ALANET: Adaptive Latent Attention Network for Joint Video Deblurring and Interpolation
Akash Gupta, Abhishek Aich, Amit K. Roy-Chowdhury
Abstract
Existing works address the problem of generating high frame-rate sharp videos by separately learning the frame deblurring and frame interpolation modules. Most of these approaches have a strong prior assumption that all the input frames are blurry whereas in a real-world setting, the quality of frames varies. Moreover, such approaches are trained to perform either of the two tasks - deblurring or interpolation - in isolation, while many practical situations call for both. Different from these works, we address a more realistic problem of high frame-rate sharp video synthesis with no prior assumption that input is always blurry. We introduce a novel architecture, Adaptive Latent Attention Network (ALANET), which synthesizes sharp high frame-rate videos with no prior knowledge of input frames being blurry or not, thereby performing the task of both deblurring and interpolation. We hypothesize that information from the latent representation of the consecutive frames can be utilized to generate optimized representations for both frame deblurring and frame interpolation. Specifically, we employ combination of self-attention and cross-attention module between consecutive frames in the latent space to generate optimized representation for each frame. The optimized representation learnt using these attention modules help the model to generate and interpolate sharp frames. Extensive experiments on standard datasets demonstrate that our method performs favorably against various state-of-the-art approaches, even though we tackle a much more difficult problem. The project page is available at https://agupt013.github.io/ALANET.html.
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Install the CLIlune papers fulltext bc4c674e-532d-447c-8dc3-ba307e423471Cited by top-tier papers8
- Spatio-Temporal Representation Factorization for Video-based Person Re-IdentificationAbhishek Aich, Meng Zheng, Srikrishna Karanam, Terrence Chen et al.ICCV 2021 · 86 citations
- Adversarial Attacks on Black Box Video Classifiers: Leveraging the Power of Geometric TransformationsShasha Li, Abhishek Aich, Shitong Zhu, M. Salman Asif et al.NeurIPS 2021 · 50 citations
- GAMA: Generative Adversarial Multi-Object Scene AttacksAbhishek Aich, Calvin-Khang Ta, Akash Gupta, Chengyu Song et al.NeurIPS 2022 · 26 citations
- FMA-Net: Flow-Guided Dynamic Filtering and Iterative Feature Refinement with Multi-Attention for Joint Video Super-Resolution and DeblurringGeunhyuk Youk, Jihyong Oh, Munchurl KimCVPR 2024 · 16 citations
- Ada-VSR: Adaptive Video Super-Resolution with Meta-LearningAkash Gupta, Padmaja Jonnalagedda, Bir Bhanu, Amit K. Roy-ChowdhuryACM MM 2021 · 9 citations
Builds on4
- Channel Attention Is All You Need for Video Frame InterpolationMyungsub Choi, Heewon Kim, Bohyung Han, Ning Xu et al.AAAI 2020 · 362 citations
- Spatio-Temporal Filter Adaptive Network for Video DeblurringShangchen Zhou, Jiawei Zhang, Jinshan Pan, Wangmeng Zuo et al.ICCV 2019 · 225 citations
- Non-Adversarial Video Synthesis with Learned PriorsAbhishek Aich, Akash Gupta, Rameswar Panda, Rakib Hyder et al.CVPR 2020
- Blurry Video Frame InterpolationWang Shen, Wenbo Bao, Guangtao Zhai, Li Chen et al.CVPR 2020
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